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High-temperature fractional quantum Hall state in the Floquet kagome flat band

Hang Liu1,2,4,*, Gurjyot Sethi2,*, D. N. Sheng5, Yinong Zhou2, Jia-Tao Sun1,3,†, Sheng Meng1,4,‡, and Feng Liu2,§

  • 1Beijing National Laboratory for Condensed Matter Physics and Institute of Physics, Chinese Academy of Sciences, Beijing 100190, People's Republic of China
  • 2Department of Materials Science and Engineering, University of Utah, Salt Lake City, Utah 84112, USA
  • 3School of Information and Electronics, MIIT Key Laboratory for Low-Dimensional Quantum Structure and Devices, Beijing Institute of Technology, Beijing 100081, People's Republic of China
  • 4Songshan Lake Materials Laboratory, Dongguan, Guangdong 523808, People's Republic of China
  • 5Department of Physics and Astronomy, California State University, Northridge, California 91330, USA

  • *These two authors contributed equally to this work.
  • †jtsun@iphy.ac.cn
  • ‡smeng@iphy.ac.cn
  • §fliu@eng.utah.edu

Phys. Rev. B 105, L161108 – Published 29 April, 2022

DOI: https://doi.org/10.1103/PhysRevB.105.L161108

Abstract

A fractional quantum Hall effect (FQHE) has been predicted in a topological flat band (FB) by a single-particle band structure combined with phenomenological theory or solution of a many-body lattice Hamiltonian with fuzzy parameters. A long-standing roadblock toward the realization of a FB-FQHE is lacking the many-body solution of specific materials under realistic conditions. We demonstrate a combined study of single-particle Floquet band theory with exact diagonalization (ED) of a many-body Hamiltonian. We show that a time-periodic circularly polarized laser inverts the sign of second-nearest-neighbor hopping in a kagome lattice and enhances spin-orbit coupling in one spin channel to produce a Floquet FB with a high flatness ratio of bandwidth over band gap, as exemplified in monolayer Pt3C36S12H12. The ED of the resultant Floquet-kagome lattice Hamiltonian gives a one-third-filling ground state with a laser-dependent excitation gap of a FQH state, up to an estimated temperature above 70 K. Our findings pave the way for exploring the alluding high-temperature FB-FQHE.

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